Xe129MRISignalUniformityAnalyzer

Xe-129 MRI Signal Uniformity Analyzer

instrumental Hyperpolarized Xenon RPH Xe-129 medical gases CSV→JSON URS & FS rule-based
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Utility description: Xe-129 MRI Signal Uniformity Analyzer

Xe-129 MRI Signal Uniformity Analyzer — Xe-129 MRI Signal Uniformity Analyzer

ℹ️  Utility evaluates HP-gas MRI image quality:
    • Signal Coefficient of Variation (CV)
    • Signal-to-Noise Ratio (SNR)
    • Intensity dynamic range

⚠️  CRITICAL: Non-uniformity may be an artifact, not pathology!
    Low SNR makes quantitative ventilation assessment impossible.

Usage:
  Xe129MRISignalUniformityAnalyzer.exe                            → demo mode (console output)
  Xe129MRISignalUniformityAnalyzer.exe input.csv output.json      → evaluate your data

Input format:
BatchNumber,ProductName,Mean_Signal,Std_Dev,Max_Signal,Min_Signal,SNR,Max_CV_Percent,Min_SNR

Example:
  IMG-XE129-2026-001,HP-Xe-129 Scan,1000,50,1100,900,25,15,10

— WHY IS THIS NEEDED?
Uniformity control is critical for HP-MRI diagnostic value:
• Hyperpolarized xenon distributes unevenly in lungs due to pathology (COPD, asthma)
• However, sharp signal drops may be caused by magnetic field artifacts (B0/B1 inhomogeneity)
• Low Signal-to-Noise Ratio (SNR) prevents reliable ventilation assessment
• Utility helps distinguish real ventilation defect from technical equipment failure
• ACR/NEMA standards require strict uniformity control for quantitative studies

⚠️  CRITICAL:
• Coefficient of Variation (CV) ≤15% for phantoms/healthy zones
• SNR ≥10 for basic diagnostics, ≥20 for quantitative analysis
• No "dead zones" with zero signal (except anatomical)
• Signal intensity stability over time

Key features:
• Statistical analysis of voxel intensity in ROI
• Coefficient of variation calculation as non-uniformity measure
• Signal-to-noise ratio assessment
• Imaging artifact detection

Critical parameters:
• CV: ≤15%
• SNR: ≥10
• Signal Range: Stable

💡 Usage tips:
1. Use standardized ROIs for comparison between patients
2. Perform phantom scan before each study series to calibrate uniformity
3. Account for receive coil influence on intensity profile
4. Compare ventilation maps with CT structure to exclude atelectasis
5. Maintain SNR log to monitor polarizer degradation

⚠️ Note: Unlike standard MRI where signal is stable, in HP-MRI signal is single-use and decaying. The utility helps ensure that obtained picture reflects physiology, not just noise or technical gas administration error.

input.csv

BatchNumber,ProductName,Mean_Signal,Std_Dev,Max_Signal,Min_Signal,SNR,Max_CV_Percent,Min_SNR
IMG-XE129-2026-001,HP-Xe-129 Phantom Scan,1000,50,1100,900,25,15,10
IMG-XE129-2026-002,HP-Xe-129 Patient Scan (Good),850,60,950,750,18,15,10
IMG-XE129-2026-003,HP-Xe-129 Patient Scan (Bad),400,120,600,200,5,15,10

URS & FS — user requirements and functional specification

URS & FS — User Requirements and Functional Specification

This document defines the controlled interface and behaviour of Xe129MRISignalUniformityAnalyzer for “Xe-129 MRI Signal Uniformity Analyzer”. Limits from the source description are an initial configuration and shall be reconciled with the approved specification, study protocol, equipment instructions and local SOPs before production use.

Domain constraints and critical parameters

  • CV: ≤15%
  • SNR: ≥10
  • Signal Range: Stable

URS — User Requirements Specification

IDRequirementCriticalityAcceptance criterion
URS-001The utility shall accept input.csv with the exact headers defined by the data contract.HighThe file is processed without manual header renaming.
URS-002The utility shall perform a deterministic assessment for “Xe-129 MRI Signal Uniformity Analyzer”.HighPASS / WARNING / FAIL is produced for each row.
URS-003Required fields, types, ranges, units and data consistency shall be validated before domain rules.HighSchema errors are separated from nonconformities.
URS-004Critical limits from the description and approved local configuration shall create a critical finding.HighA critical rule violation results in FAIL.
URS-005The result shall be written to machine-readable output.json.HighJSON contains source values, checks, warnings and failures.
URS-006The conformity decision shall not use machine learning.MediumThe result is reproducible from explicit rules and inputs.
URS-007Traceability of batch, source file, rule version and final status shall be retained.HighQA/QC can reproduce the decision.
URS-008The utility shall have exactly one primary portal tag: instrumental.MediumThe other api / instrumental / medical_devices tags are absent.
URS-009Documentation shall support IQ/OQ/PQ or equivalent CSA/CSV verification.MediumThe contract, test scenarios and change-control rules are supplied with the utility.

input.csv data contract

#FieldTypeUnitSamplePurpose
1BatchNumberstringas specifiedIMG-XE129-2026-001Batch/lot identifier for traceability.
2ProductNamestringas specifiedHP-Xe-129 Phantom ScanName of the controlled product, gas, procedure or equipment.
3Mean_Signaldecimalas specified1000Measured signal used for SNR, uniformity or polarization-efficiency assessment.
4Std_Devdecimalas specified50Controlled input.csv field: Std Dev.
5Max_Signaldecimalas specified1100Measured signal used for SNR, uniformity or polarization-efficiency assessment.
6Min_Signaldecimalas specified900Measured signal used for SNR, uniformity or polarization-efficiency assessment.
7SNRdecimalas specified25Signal-to-noise ratio used to assess diagnostic data usability.
8Max_CV_Percentdecimal%15Controlled input.csv field: Max CV Percent.
9Min_SNRdecimalas specified10Signal-to-noise ratio used to assess diagnostic data usability.
BatchNumber,ProductName,Mean_Signal,Std_Dev,Max_Signal,Min_Signal,SNR,Max_CV_Percent,Min_SNR
IMG-XE129-2026-001,HP-Xe-129 Phantom Scan,1000,50,1100,900,25,15,10
IMG-XE129-2026-002,HP-Xe-129 Patient Scan (Good),850,60,950,750,18,15,10
IMG-XE129-2026-003,HP-Xe-129 Patient Scan (Bad),400,120,600,200,5,15,10

FS — Functional Specification

IDFunctionImplementation
FS-001CLI executionXe129MRISignalUniformityAnalyzer.exe supports demo mode and input.csv output.json mode.
FS-002CSV importRead UTF-8 CSV and validate header, column count and order.
FS-003Schema validationValidate required values, empties, types and basic plausibility.
FS-004Domain rule engineApply explicit rules for “Xe-129 MRI Signal Uniformity Analyzer” and locally approved limits.
FS-005Status aggregationFAIL for a critical finding; WARNING for a non-critical deviation; PASS for conformity.
FS-006JSON exportWrite source values, applied rules, statuses, warnings, failures and configuration version.
FS-007Audit supportRetain a result structure suitable for review, investigation, IQ/OQ and change control.
FS-008Integration contractLIMS/ELN/MES or an instrument wrapper creates CSV; the utility returns JSON.

output.json example

{
  "utilityId": "xe129-mri-signal-uniformity-analyzer",
  "primaryTag": "instrumental",
  "overallStatus": "PASS|WARNING|FAIL",
  "sourceFile": "input.csv",
  "checks": [
    {
      "parameter": "BatchNumber",
      "value": "IMG-XE129-2026-001",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "ProductName",
      "value": "HP-Xe-129 Phantom Scan",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "Mean_Signal",
      "value": "1000",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "Std_Dev",
      "value": "50",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "Max_Signal",
      "value": "1100",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "Min_Signal",
      "value": "900",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "SNR",
      "value": "25",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    },
    {
      "parameter": "Max_CV_Percent",
      "value": "15",
      "status": "PASS|WARNING|FAIL",
      "message": "Rule-based check result"
    }
  ],
  "warnings": [],
  "criticalFindings": []
}

OQ/PQ test scenarios

IDScenarioExpected result
OQ-001Valid example rowPASS or an allowed WARNING under local rules.
OQ-002Required column missingSchema error; domain checks do not mask it.
OQ-003Non-numeric value in numeric fieldType-conversion error.
OQ-004Critical parameter outside its limitFAIL and a critical finding.
OQ-005Boundary valueThe result follows the configured ≤ / ≥ / < / > operator.
PQ-001Real site dataAgreed QA/QC review retaining CSV, JSON, version and checksum.

QA/QC and change control

  • Do not change column names without updating the validator, documentation and test set.
  • Retain input.csv, output.json, executable version, rule version and checksums.
  • Before production use, verify local limits and execute IQ/OQ/PQ or equivalent CSA.
  • Changes affecting patient safety, dosimetry, gas composition, polarization or equipment require documented impact assessment.

Included in packages

Rph Hyperpolarized Xenon Lifecycle QC Suite

29 utilities for the hyperpolarized xenon lifecycle: isotope composition and gas purity, SEOP and polarization, T1/storage/transport, safe blending and delivery, MRI/SPECT QC, dosimetry, scavenging, recovery and recycling.

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RPH isotope family: xenon and gas tracers

Xe-127, Xe-129 and Xe-133 for ventilation, hyperpolarized imaging, gas QC and safety.

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RPH organ/system: pulmonary and ventilation

Lung perfusion, MAA, V/Q, aerosol, xenon ventilation, shunt and pulmonary dosimetry.

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RPH use case: xenon, ventilation and medical gases

Xe-129, Xe-133, Xe-127, hyperpolarization, SEOP, T1, mixing, scavenging, transport, recovery and ventilation imaging.

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RPH workflow: dosimetry and therapy planning

Activity planning, absorbed dose, organ dose, lung shunt, preplanning and therapy verification.

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RPH workflow: imaging QC and quantitative interpretation

Acquisition, uptake, clearance, perfusion, transit, ejection fraction, segmentation and quantitative imaging.

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RPH workflow: instruments, devices and radiation safety

PET/gamma-camera state, calibration, detector QC, energy window, TOF, shielding and radiation safety.

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RPH workflow: stability, storage, decay and waste

Kinetic stability, shelf life, decay correction, expiry, storage, trend and radioactive waste.

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